Digraph network subnetworks

ABSTRACT

A method for a digraph linked network to provide subnetwork communication is disclosed. The method running a first superframe in a digraph linked network containing at least one digraph link wherein a digraph link is a directional link specifying routing information between a first node and a second node in the digraph linked network. The method further comprises running a second superframe in a digraph linked network containing at least one digraph link.

CROSS REFERENCE TO OTHER APPLICATIONS

This application is a continuation in part of co-pending U.S. patent application Ser. No. 10/960,709 entitled LOW-POWERED AUTONOMOUS NODE FOR MESH COMMUNICATION NETWORK filed Oct. 6, 2004, which is incorporated herein by reference for all purposes and which claims priority to U.S. Provisional Patent Application No. 60/557,148 entitled COMMUNICATIONS PROTOCOL FOR REMOTE SENSOR NETWORKS filed Mar. 27, 2004 which is incorporated herein by reference for all purposes.

U.S. patent application Ser. No. 10/960,709 entitled LOW-POWERED AUTONOMOUS NODE FOR MESH COMMUNICATION NETWORK filed Oct. 6, 2004 is a continuation in part of U.S. patent application Ser. No. 10/914,056 entitled DIGRAPH BASED MESH COMMUNICATION NETWORK filed Aug. 5, 2004, which is incorporated herein by reference for all purposes, and claims priority to U.S. Provisional Patent Application No. 60/557,148 entitled COMMUNICATIONS PROTOCOL FOR REMOTE SENSOR NETWORKS filed Mar. 27, 2004, which is incorporated herein by reference for all purposes.

BACKGROUND OF THE INVENTION

Digraph networks are networks of wireless nodes linked together using directional communication links. Digraph networks can be large. In some situations, communication is only required within a small group of nodes within the network. For example, the information from one node is only required by one or a few other nodes in the network. In another example, the information is required in a short time frame by another node. A problem that arises in a digraph network is that information flows in the network are distributed. The distribution of the information flow helps the reliability of the network but also can be inefficient in that a greater number of nodes are required to handle information than require the information. Another problem that arises is that the distributed information flow is inefficient in the time it takes to traverse the network. Control systems that rely on the timely arrival of information from one node at another node have difficulty if there is excess delay in the arrival of the information. It would be useful to have efficient use of node communications and to be able to achieve required timely arrival of information between nodes.

BRIEF DESCRIPTION OF THE DRAWINGS

Various embodiments of the invention are disclosed in the following detailed description and the accompanying drawings.

FIGS. 1A, 1B and 1C illustrate embodiments of different kinds of graphs.

FIG. 2 illustrates an embodiment of the relationship of communication packets, time slots, and superframe cycles.

FIGS. 3A and 3B illustrate embodiments of the interrelationship of a digraph and a superframe.

FIG. 4 illustrates an embodiment of links between intelligent nodes hopping across channels in different cycles.

FIGS. 5A, 5B and 5C illustrate embodiments of two digraphs running on the same network of intelligent nodes with their associated superframes.

FIG. 6 illustrates an embodiment of the resulting combined link activity for the intelligent nodes in FIG. 5.

FIG. 7A illustrates an embodiment of the theoretical relationship between crystal frequency error and temperature, before and after temperature compensation.

FIG. 7B illustrates an embodiment of is the actual measured frequency deviation versus temperature for crystal compensated according to the invention.

FIG. 8 illustrates an embodiment of an on-board clock of the intelligent nodes.

FIGS. 9A, 9B, and 9C illustrate embodiments of a diagram of a digraph of a simple star-connected network that shows two different implementations of that digraph, one in a superframe with nine slots on a single channel (FIG. 9B) and one with twelve slots on three channels (FIG. 9C), respectively.

FIGS. 10A and 10B illustrate embodiments of a digraph associated with a linear network and an implementation of that digraph in a superframe with 12 slots in three channels.

FIG. 10C illustrates a digraph network in one embodiment.

FIG. 10D illustrates a superframe corresponding to the digraph network of FIG. 10C in one embodiment.

FIG. 10E illustrates a superframe corresponding to the digraph network of FIG. 10C in one embodiment.

FIG. 10F illustrates a digraph network in one embodiment.

FIG. 10G illustrates two superframes corresponding to the digraph network of FIG. 10F in one embodiment.

FIG. 10H illustrates a superframe corresponding to the digraph network of FIG. 10F in one embodiment.

FIG. 10I illustrates a digraph network in one embodiment.

FIG. 10J illustrates two superframes corresponding to the digraph network of FIG. 10I in one embodiment.

FIG. 10K illustrates a digraph network in one embodiment.

FIG. 10L illustrates three superframes corresponding to the digraph network of FIG. 10K in one embodiment.

FIG. 11 illustrates an embodiment of how data storage is organized on the intelligent node, with links and packets associated with superframes.

FIG. 12 illustrates an embodiment of an intelligent node state machine associated with communication.

FIG. 13 illustrates an embodiment of signal types into and out of an intelligent node.

DETAILED DESCRIPTION

The invention can be implemented in numerous ways, including as a process, an apparatus, a system, a composition of matter, a computer readable medium such as a non-transitory computer readable storage medium or a computer network wherein program instructions are sent over optical or electronic communication links. In this specification, these implementations, or any other form that the invention may take, may be referred to as techniques. In general, the order of the steps of disclosed processes may be altered within the scope of the invention.

A detailed description of one or more embodiments of the invention is provided below along with accompanying figures that illustrate the principles of the invention. The invention is described in connection with such embodiments, but the invention is not limited to any embodiment. The scope of the invention is limited only by the claims and the invention encompasses numerous alternatives, modifications and equivalents. Numerous specific details are set forth in the following description in order to provide a thorough understanding of the invention. These details are provided for the purpose of example and the invention may be practiced according to the claims without some or all of these specific details. For the purpose of clarity, technical material that is known in the technical fields related to the invention has not been described in detail so that the invention is not unnecessarily obscured.

Subnetwork communication for a digraph linked network is disclosed. The subnetwork is a set of nodes and links between nodes that are a part of the network. Subnetwork communication has communication between nodes that are within the subnetwork and uses nodes and links that are within the subnetwork. Subnetworks can offer long superframes which provide slow communication and short superframes which provide fast communication between nodes in the network.

Digraph networks employ intelligent nodes comprising a transmitter and receiver, a power source, input devices, sometimes output devices, and an intelligent controller, such as a programmable microprocessor controller with memory. In the past, networks, such as the interne, have been developed having configurations or networks for communication that are static, dynamic or a hybrid of static and dynamic. Power for these networks has been most often supplied via wires (the nodes are “plugged in”) or occasionally from batteries. As the size, power, and cost of the computation and communication requirements of these devices has decreased over time, battery powered wireless systems have gotten smaller and smaller and more prevalent. The limit to size scaling resulting from this trend to smaller and lower power wireless devices is in the millimeter size range, leading to predictions of “smart dust”. For this reason, the research community has adopted the name mote to refer to a small wireless sensor device. Mote is an old English word meaning a speck of dust.

A self-contained unit of communication information is called a packet. A packet has a header, a payload and an optional trailer (FIG. 2). A link is a path which originates at exactly one node and terminates at exactly one other node. A node is thus any vertex or intersection in a communication network. A node may be passive or intelligent. A node is assumed to be an intelligent node in that it is capable of receiving and analyzing information, taking certain actions as a result of received information, including the storing of received or processed information, modifying at least part of received information, and in some instances originating and retransmitting information.

In ATM systems, a cell is a channel-specific time period of fixed duration during which a unit of communication occurs between two fixed terminals without conflict. By comparison, as used herein, a slot refers to a time period during which a packet can be sent as well as acknowledged, and a cell refers to a particular slot and radio channel offset in a superframe (defined below). In conventional TDMA systems, such as defined by the DS-1 (T-1) standard, a frame is a period of time of defined and fixed duration. By contrast, a superframe is an arbitrary number of slots and thus can be of variable duration. A superframe is iterated each cycle, as hereinafter explained.

Communication between intelligent nodes occurs only at specific times and on specific channels. Each intelligent node in a network represents its connectivity to other intelligent nodes in the network as a collection of directed links on one or more digraphs. Each superframe repeats in a continuous sequence of cycles. Each link can be used for the transmission and optional acknowledgement of a single packet. Thus, in a given superframe, the available bandwidth from intelligent node A to intelligent node B (in packets per second) is the product of the number of links from A to B in the superframe (links per cycle) and the superframe rate (cycles per second). For example, if there were 1 link from intelligent node A to intelligent node B in superframe S, and superframe S consisted of 100 slots of duration 50 ms per slot, then the length of a single cycle of superframe S would be five seconds (100×0.05=5), and the superframe rate would be 0.2 cycles/second. With one available link per frame, intelligent node A would be able to send at most one packet to intelligent node B every five seconds. In the same superframe, intelligent node B might have ten links to intelligent node A, giving B ten times the bandwidth to A as A has to B. In a separate superframe F with 10 slots of length 50 ms, intelligent node A might have five links to intelligent node C, giving an available bandwidth of 10 packets per second (1 packet/link*5 links/cycle*2 cycles/second).

The ability to create multiple superframes of different lengths, and assign different numbers of links between intelligent nodes in each superframe provides flexibility to the network designer. This flexibility allows bandwidth, redundancy, latency, and many other network performance parameters to be traded off against power consumption.

There is a one to one correspondence between digraphs or networks and superframes. Digraphs are the abstract representation of a superframe, and they allow designers to look at and design collections of links and understand their function. Each link in a digraph is assigned a cell, that is, a particular time slot offset and channel offset, in the corresponding superframe. In each cycle of the superframe, these two offsets are used together with the cycle number to calculate the exact time and frequency on which the intelligent node is to turn on its radio.

Referring to FIG. 1A, a graph is defined a collection of vertices or intelligent nodes with connections, or links, between the intelligent nodes. Referring to FIG. 1B, a digraph is defined as a graph where all of the links have an associated direction, so that a digraph connects a plurality of intelligent nodes in a network with links defining direction of flow. Referring to FIG. 1C, a multi-digraph is defined as a digraph in which there exists at least one pair of links which both originate at the same originating intelligent node and terminate on the same terminating intelligent node. It is possible to have multiple multi-digraphs, if there is a first multi-digraph in which each link is labeled “1”, and a second multi-digraph in which each link is labeled “2”, and one or more of the intelligent nodes in the first graph is also in the second graph, then this is an example of multiple multi-digraphs.

Herein the concept of digraph-based packet transport is introduced. Digraph based packet transport is analogous to water flowing in a river delta with its meandering branches. If a number of intelligent entities each in an independent unpropelled watercraft were dropped all over the delta with no means of guidance except to choose a path at each fork, they would take a wide variety of paths, depending on flow and congestion. Eventually, all would arrive at the basin. Two that started far apart might end up close together, and two that started near each other might take completely different paths and arrive at different times.

In a packet communication network, a method and apparatus for packet switched transport is provided among intelligent nodes wherein the duty cycling of the intelligent nodes is minimized in order to maximize power life using a synchronization algorithm that assures all nodes are able to propagate information through the network without undue use of transmission and reception power. Frequency hopping time-division multiple access supports packet communication between intelligent nodes via assigned directed links, each link being assigned to a time-channel offset (cell) in a superframe, so that a link carrying a packet string between any two intelligent nodes is active only during its assigned time slot. The result is efficient use of spectrum and minimal expenditure of power. If multiple superframes are employed and all frequency slots are simultaneously operating in synchronicity, the spectrum has the potential for 100% data utilization, less guard band spectrum.

In a sensor network, the vertices of a graph, representing the topology of the network, are the sites of intelligent nodes, also designated “motes,” either physical or symbolic, which are capable of analyzing incoming traffic and sensory data and which can act upon the traffic, reroute traffic and originate information from the site. Directed links (101 FIG. 1B) between intelligent nodes A, B, C, and G represent communication slots, and multiple links or slots (FIG. 1C) provide a mechanism for exhibiting relative available bandwidth between intelligent nodes. Every directed link in a digraph has the capability of transporting one packet in a given communication slot (FIG. 2). Each of these slots has a fixed length and admits the construction of a superframe (FIG. 2) which defines how the links in a given digraph will be distributed in time and frequency.

Referring to FIG. 2, a slot is a period of time in a superframe (which consists of N slots) during which a packet may be sent and (optionally) acknowledged. Slots herein have a uniform, fixed duration, and therefore packets carried in any slot have a corresponding maximum data payload size within the constraints of the standard slot.

Superframes repeat, and each repetition is called a communication cycle, or simply a cycle. All intelligent nodes in a defined network share the same synchronized view of the occurrences of the edges of slots. Intelligent nodes may participate in multiple graphs/superframes and therefore communicate with other intelligent nodes at very different rates and with different latencies. There may be no single superframe which has slots that contains the traffic of all intelligent nodes in the network.

All intelligent nodes within a network, whether digraph-based or tree or conventional mesh, have a shared sense of time, synchronized to within about one millisecond (see below). In operation (FIG. 3A), if intelligent node B is transmitting to intelligent node A in time slot I (111, FIG. 3B), intelligent node A can therefore expect the transmission to occur within a few milliseconds of the beginning of slot I 111 during each cycle. If the header of the message has not been received within a few milliseconds of the beginning of slot I, (114, FIG. 2), intelligent node A will turn off its receiver (go to sleep) assuming that intelligent node B had nothing to send at that particular time. The result is that redundant receive links can be used in a network with a power penalty of roughly one tenth of the cost of a link that is used. Thus, if intelligent node B in general needs to send p number of packets per cycle to intelligent node A, there can be for example 3*p links dedicated to this task, of which only one third will typically be used. The unused links cost the transmitter no power at all (if the transmitter has no packets to send, as it will not turn on its output stage). The unused links cost the potential receiver much less than an active link, since the receiver need only be on for a fraction of the slot length as needed to detect whether a message is incoming. This 200% redundancy in links costs approximately 20% in additional power consumption, but it provides for a dramatic increase in the reliability of a network.

The duration of the “acceptable header start time” depends on the accuracy of clock synchronization (in parts per million) among intelligent nodes, as well as the length of delays between exchanges of packets and acknowledgment packets. Taken together, these parameters relate network latency, battery life and the superframe rate, or “chattiness” of the network.

Time clocks drift with temperature. For a reasonably simple temperature compensation scheme, the intelligent nodes are expected to a shared time base that is off by no more than a few tens of parts per million (PPM). For a 100 second long superframe, that corresponds to a few milliseconds of error after one cycle of a superframe. If longer time periods for superframe length are desired (i.e. less communication chatter) then either the listening time must be increased, with corresponding power increase, or the clock drift must be reduced.

FIG. 3A illustrates the implementation a digraph through selection of slots in a time/frequency (slot/channel) plane of a superframe (FIG. 3B). Time (x-axis) is divided into slots, and frequency (y-axis) is divided into channels, for example in the ISM band from 902.5 MHZ to 927.5 MHz in 500 kHz increments. Thus, each link in the graph has a corresponding time/frequency bucket, or slot, in time/frequency space.

An example of channel (frequency) assignment of three links in the multi-digraph is shown in FIG. 3B. Typical implementations would use pseudo-random and potentially time-varying channel/frequency mapping. In time order, the slot assignments are {1, 2} for B->A #1; {3,4} for B->A #2, and {5,3} for C->A, which slots are then repeated each cycle.

Multiple cycles of a sample superframe, as shown in FIG. 4, illustrate how the communication channel changes each cycle. To maximize immunity to narrowband interference, the communication channel of the slot to which a link is assigned is offset by one channel each superframe. As shown in FIG. 4, each cycle the actual communication channel is incremented by one (modulo of the number of channels). In this way, every link in a network is effectively implemented over a pseudo-random sequence of frequencies. For some networks, this pseudo-random variation in frequency can also be applied to the time slot for the communication. In a variation, both ends of a digraph link can be informed as to the future slot usage of a superframe through appropriate identification and authentication, such as ID, password, etc., so that the communication can be effected without reliance on a predetermined slot pattern. As a further extension, the ends can identify to each other a selected one of a choice of slot usage patterns over future superframes.

FIGS. 5A and 5B are diagrams illustrating two digraphs (FIG. 5C) running on the same network of intelligent nodes, with examples of what the superframe associated with each digraph might be. Herein the respective digraphs, herein labeled solid line and dashed line, corresponding to plain font and dashed line corresponding to bold italicized font, may be implemented on either identical or of independent sets of channels without causing interference with each other.

FIG. 6 illustrates how these two superframes share spectrum. By careful choice of superframe length and time slots, there is never a time-slot collision between the two superframes. The timeslots used by one superframe are blocked with respect to the other superframe. The two different digraphs in a network need not be implemented with the same transmission rate. As illustrated in FIG. 5B, by using a different length frame for the second digraph, in this case a subharmonic of the first digraph, links in the first digraph appear with three times the frequency of the links in the second digraph. Superframes are inherently composed of an integral number of slots, but they need not be integer multiples of each other in length. However, as in FIG. 6, by choosing the second superframe length to be an integer multiple of the first superframe length, it is possible to guarantee that there will be no collisions between the two superframes. Alternatively, using superframe lengths that are prime numbers will ensure that time-slot collisions, when they do occur, are evenly distributed among links.

A relatively a large number of links may be implemented. For an embodiment with 50 channels and a 30 ms slot length, there are over 1500 slot/channel pairs available per second, with room for guard band and guard times.

In any network type, each intelligent node must store its own collection of links. The information that an intelligent node must store to completely characterize a link is about 20 bytes long (superframe ID, slot, channel, partner, link type, etc.). This allows an intelligent node to store roughly 50 links/KB of RAM.

The representation and synchronization of time in a sensor network is essential if the network is synchronous and if energy is to be conserved. In a specific embodiment, all intelligent nodes are assumed to have a 32 kHz crystal oscillator, as typically found in a watch, as a time reference. Low-cost watch crystals are advantageous because of their low power consumption (sub-microwatt), but they are known to have substantial variation in frequency in both their manufacturing tolerance, as well as their temperature dependence. One simple representation of the actual oscillation frequency of a crystal oscillator is given by: F _(osc) =F _(nom)·(1+alpha(T−T _(nom) +T _(off))²+PPM_(off)+PPM_(drift)) where F_(nom), is 32,768 Hz, T_(nom) is 25 degrees C., and alpha is typically 0.0035+/−0.0005 PPM/K², T_(off) is +/−5K, PPM_(off) is +/−20 PPM, and PPM_(drift) is +/−3 PPM in the first year.

Taken together, these offsets and temperature dependencies generate a worst case of up to 200 PPM difference in crystal oscillation rate between two intelligent nodes under industrial temperature conditions. Even at room temperature, the difference can be almost 50 PPM. This implies that, without compensation, two intelligent nodes which synchronize their clocks at time t₀ could be off by as much as 12 ms one minute later, or 17 seconds after a day.

The majority of the error in clock rate is due to the quadratic dependence of frequency on temperature. The room-temperature frequency offset, PPM_(off), as well as the quadratic coefficient, alpha, and the temperature peak offset, T_(off), can all be measured at the time of manufacture, and a calibration table can be created which represents the difference between the actual frequency of the oscillator and the desired frequency of the oscillator. It is difficult to directly adjust the frequency of the crystal based on this knowledge, but it is relatively straightforward to adjust the digital counter which is incremented each cycle of the crystal.

FIG. 7A is a graph of the simulated preliminary results of temperature compensation of the 32 kHz clock. The uncompensated crystal (smooth parabolic curve) has over 160 PPM error at low temperature. Compensating for the slow crystal by adding additional ticks with a frequency dependent on the measured temperature yields the jagged line.

FIG. 7B is the actual preliminary results of temperature compensation of the 32 kHz clock. Measured data remains within roughly 20 PPM of zero error over the range −40 deg. C. to +85 deg. C. Because all crystals have slightly different parameters, it is likely that each intelligent node will need to be calibrated at the time of manufacture. This can be done either via a physical connection or an RF communication link. Intelligent nodes are placed in a temperature-controlled environment, informed of the ambient temperature, and given a time reference of some kind, such as a series of synchronizing packets via the RF link from a master controller. Based on this time and temperature reference, the intelligent nodes are expected to determine various calibration compensation parameters and to perform the corresponding compensations.

The calibration can be performed as follows: A simple method is to use table-lookup mapping technique to relate temperature to the appropriate delay for an extra “tick” of the 32 kHz clock. For example, if calibration determines that, at 0 deg. C., the clock is slow by 50 PPM, then every 20,000 ticks (the reciprocal of 50 PPM) a one tick adjustment is added.

A block diagram of a circuit 150 that illustrate this approach to calibration is shown in FIG. 8. A 32 kHz oscillator (crystal 151) provides the reference, which is corrected for temperature by a temperature sensor 153, for timing drift by a MAC layer packet timing information compensator 155, as well as for manufacturing offset, by a compensation circuit 152 that adds occasional ticks. This drives a hardware counter 154 that counts ticks directly, optionally augmented by a software counter 156 (e.g., via interrupts generated when the hardware counter rolls over). This counter setup represents the intelligent node's best guess at how long it has been awake since last reboot. Each intelligent node maintains a 48-bit counter 158 which represents time since its last reboot, or uptime. Uptime is guaranteed monotonic (non-decreasing), and it is used for on-intelligent node timing of events.

In addition to uptime, each intelligent node maintains a local standard time offset 160, which is an estimate of the difference between its internal clock (uptime 158) and a global network standard, herein Dust Standard Time (DST) 162. DST is zero at midnight on Jan. 1, 2003. The DST offset 160 value is subject to modification from a communication information corrector 161 that derives correction information from the MAC layer. The DST offset 160 value is added to uptime value to generate the intelligent node's best guess at the DST 162 value, with correction. The DST value is used to schedule network events, such as communication with other intelligent nodes and for sampling of sensors. If an intelligent node is a part of multiple networks or has multiple parents or gateways, the DST offset for each can be stored separately. Time synchronization across the network is achieved by exchanging timing information in every link.

Groups of crystals manifest a natural distribution above and below their rated frequency, and only those which are slow can be sped up to the nominal frequency, leaving the other crystals to run fast. One solution to this problem is to speed all crystals up to a speed that is faster than the nominal crystal frequency.

For a given digraph, or communication flow, there are many different superframe implementations. FIG. 9A represents a simple star-connected network in which three intelligent nodes communicate directly with a fourth gateway intelligent node. The digraph in FIG. 9A shows that there should be two “inward” links from each intelligent node to the gateway, and one “outward” link from the gateway to each mote, giving 9 links total. These nine links must be assigned to cells in a superframe. By picking a superframe with 9 time slots and a single channel offset, each of these links can be assigned to a separate cell in the superframe. This assignment is not unique, but an example assignment is shown in FIG. 9B. In the link assignment illustrated in 9B, intelligent node A has two opportunities to send a packet to intelligent node G at the beginning of each cycle, and then no more opportunities to send a packet for the rest of the cycle. By picking a superframe with 12 time slots and 3 channel offsets there are many more options for assigning the nine links to 36 cells. One such assignment is shown in FIG. 9C. These diagrams thus illustrate the efficiency of spectrum and time usage and suggest how links can be ordered in order to be optimized.

FIG. 10A and FIG. 10B are together an example of a digraph associated with a linear network and an example implementation of that digraph in a superframe with 12 slots. The similarities and differences with the example of FIGS. 9A-C will be evident.

FIG. 10C illustrates a digraph network in one embodiment. In the example illustrated, nodes are connected to each other with directional communication links. The links indicate the direction of transmission of packets. In some embodiments, there is communication in the opposite direction of the link in order to acknowledge, or not acknowledge, the proper receipt of a packet after it has been transmitted. Gateway node G is linked to node A1, node A2, and node A3. Node A1 is linked to node G and to node B1. Node A2 is linked to node G, node B1, node B2, and node B3. Node A3 is linked to node G and node B3. Node B1 is linked to node A1. Node B2 is linked to node A2 and node B3. Node B3 is linked to node A3 and node B2.

FIG. 10D illustrates a superframe corresponding to the digraph network of FIG. 10C in one embodiment. In the example illustrated, superframe B containing three channels is shown: channel 0 (Ch 0), channel 1 (Ch 1), and channel 2 (Ch 2). The superframe also contains nine time slots: slot 0 (S0), slot 1 (S1), slot 2 (S2), slot 3 (S3), slot 4 (S4), slot 5 (S5), slot 6 (S6), slot 7 (S7), and slot 8 (S8). In the example illustrated, in Ch 0-S0 cell, node B1 sends to node A1. In Ch 1-S0 cell, node B2 sends to node A2. In Ch 2-S0 cell, node A3 sends to node B3. In Ch 0-S1 cell, node A1 sends to node G. In Ch 1-S1 cell, node B3 sends to node B2. In Ch 0-S2 cell, node A1 sends to node B1. In Ch 1-S2 cell, node A2 sends to node G. In Ch 2-S2 cell, node B3 sends to node A3. In Ch 1-S3 cell, node A2 sends to node B2. In Ch 2-S3 cell, node A3 sends to node G. In Ch 1-S4 cell, node B2 sends to node B3. In Ch 0-S5 cell, node B3 sends to node B2. In Ch 2-S6 cell, node B2 sends to node B3. In Ch 0-S7 cell, node G sends to nodes A1, A2, and A3. In Ch 1-S8 cell, node A2 sends to nodes B1, B2, and B3.

In the example illustrated in 10D, Ch 1-S1 cell, Ch 1-S4 cell, Ch 0-S5 cell, and Ch 2-S6 cell contain a communication loop that is cycled through multiple times (two times in this case) allowing frequent communication within the subnetwork. The superframe is nine time slots overall in length. One communication loop is where a packet is transmitted by a first node (node B3) and received by a second node (node B2) and where a packet is also transmitted by the second node (node B2) and received by the first node (node B3).

FIG. 10E illustrates a superframe corresponding to the digraph network of FIG. 10C in one embodiment. In the example illustrated, superframe C containing three channels is shown: channel 0 (Ch 0), channel 1 (Ch 1), and channel 2 (Ch 2). In some embodiments, Ch 0, Ch 1, and Ch 2 are assigned to frequencies in a pseudo-random sequence of frequencies available to the network. The superframe also contains one time slot: slot 0 (S0). In the example illustrated, in Ch 0-S0 cell, node B3 sends to node B2.

In the example illustrated in FIG. 10E, superframe C and superframe B run concurrently. Superframe B enables communication for all nodes and can maintain time synchronization. Superframe B enables data communication, health report communication, and control information communication. Superframe C enables low latency communication from node B3 to node B2. In some embodiments, superframe B and superframe C run sequentially; superframe B runs for a predetermined period of time, and then superframe C runs for a predetermined period of time. In some embodiments, an event causes a change from superframe B running to superframe C running or a change from superframe C running to superframe B running, where the event that causes the change can be the reception of information by the network (for example, information that a switch has changed state, a sensor reading an extreme value, or an alarm being triggered), a change to the network state as determined by a gateway node (for example, the gateway calendar indicates that increased monitoring occurs during the week as opposed to on weekends), a status of the network (for example, more power is available), or any other event where a change to the superframe running is useful.

FIG. 10F illustrates a digraph network in one embodiment. In the example illustrated, node A is linked to node B and node E. Node B is linked to node G twice. Node C is linked to node G. Node E is linked to node C. Node F is linked to node E, node C, and node A. Node H is linked to node B twice and node C. In various embodiments, there are other supported links in the network in order to enable time synchronization, health report communication, data communication, and/or control information.

FIG. 10G illustrates two superframes corresponding to the digraph network of FIG. 10F in one embodiment. In the example illustrated, superframe D and superframe E include the cells with communication between node H and node B and node G. Superframe D and superframe E may contain cells where other nodes communicate with each other, but they are not shown in this example. Superframe D contains N channels (represented by Ch 0, Ch 1, and Ch N) and 30 time slots (represented by S0, S1, S15, and S29). In Ch 1-S15 cell, node H sends to node B. Superframe E contains N channels (represented by Ch 0, Ch 1, and Ch N) and 200 time slots (represented by S0, S1, S60, S142, S143, and S199). In Ch 0-S60 cell and Ch 1-S143 cell, node B sends to node G. In Ch 1-S142, node H sends to node B.

FIG. 10H illustrates a superframe corresponding to the digraph network of FIG. 10F in one embodiment. In the example illustrated, superframe F includes the cell with communication between node F and node A. Superframe F contains N channels (represented by Ch 0, Ch 1, and Ch N) and 1 time slot (represented by S0). In Ch N-S0 cell, node F sends to node A.

In the example illustrated in Figures F, G, and H, superframes D, E, and F all run concurrently. Superframe E has a long latency (corresponding to the 200 time slots) and can be used for maintaining time synchronization, sending data and health reports, and control information. Superframe D has a medium latency (corresponding to 30 time slots). In some embodiments, node B is a heating ventilation and air conditioning control point and node H is a temperature sensor where the 30 time slots corresponds to approximately a 1 second latency. Superframe F has a short latency (corresponding to 1 time slot). In some embodiments, node F is a light switch and node A is a light and the 1 time slot corresponds to approximately a 30 millisecond latency. In various embodiments, superframes D, E, and F run sequentially and the network switches between the superframes based either on triggering events or on predetermined times.

FIG. 10I illustrates a digraph network in one embodiment. In the example illustrated, nodes are connected to each other with directional communication links. The links indicate the direction of transmission of packets. In the example illustrated, node A is linked to node B and node E. Node B is linked to node G twice. Node C is linked to node G. Node E is linked to node C and to node A. Node F is linked to node E twice, node C, and node A. Node H is linked to node B, node C, node E, and node F. In various embodiments, there are other supported links in the network in order to enable time synchronization, health report communication, data communication, and/or control information.

FIG. 10J illustrates two superframes corresponding to the digraph network of FIG. 10I in one embodiment. In the example illustrated, superframe G includes the cells with communication between nodes A, E, F, and H represented in FIG. 10I with the dotted digraph links. Superframe H includes the cells with communication between nodes A, B, C, E, F, G, and H represented in FIG. 10I with the solid digraph links. Superframe G and H may contain cells where other nodes communicate with each other, but they are not shown in this example.

Superframe G contains N channels (represented by Ch 0, Ch 1, and Ch N) and 65 time slots (represented by S0, S1, S15, and S64). In Ch 0-S0 cell, node F sends to node E. In Ch N-S1 cell, node E sends to node A. In Ch 0-S15 cell, node F sends to node A. In Ch 1-S15 cell, node H sends to node E. In Ch N-S64 cell, node H sends to node F. Superframe H contains N channels (represented by Ch 0, Ch 1, and Ch N) and 200 time slots (represented by S0, S1, S60, S142, S143, and S199). In Ch 0-S0 cell, node F sends to node C. In Ch N-S0 cell, node A sends to node E. In Ch 1-S1, node H sends to node C. In Ch 0-S60 cell, node B sends to node G. In Ch N-S60 cell, node E sends to node C. In Ch 1-S142 cell, node H sends to node B. In Ch N-S142 cell, node C sends to node G. In Ch 1-S143 cell, node B sends to node G. In Ch 0-S199 cell, node A sends to node B. In Ch 1-S199 cell, node F sends to node E.

In the example illustrated in Figures I and J, superframes G and H run concurrently. Superframe H has a long latency (corresponding to the 200 time slots) and can be used for maintaining time synchronization, sending data and health reports, and control information. Superframe G has a medium latency (corresponding to 65 time slots). In some embodiments, node H is an industrial process sensor and node A is an industrial process controller. In various embodiments, superframes G and H run sequentially and the network switches between the superframes based either on triggering events or on predetermined times.

FIG. 10K illustrates a digraph network in one embodiment. In the example illustrated, nodes are connected to each other with directional communication links. The links indicate the direction of transmission of packets. In the example illustrated, node B is linked to node A three times (two solid links and one dashed link). Node C is linked to node A three times (one solid link, one dashed link, and one dotted link). Node E is linked to node C twice (one solid link and one dotted link). Node F is linked to node E (solid link) and node C (solid link). Node G is linked to node B (solid link) and node E twice (one solid link and one dotted link). Node h is linked to node B twice (one solid link and one dashed link) and node C twice (one solid link and one dashed link). In various embodiments, there are other supported links in the network in order to enable time synchronization, health report communication, data communication, and/or control information.

FIG. 10L illustrates three superframes corresponding to the digraph network of FIG. 10K in one embodiment. In the example illustrated, superframe I includes the cells with communication between nodes G, E, C, and A represented in FIG. 10K with the dotted digraph links. Superframe J includes the cells with communication between nodes H, B, C, and A represented in FIG. 10K with the dashed digraph links. Superframe K includes the cells with communication between nodes A, B, C, E, F, G, and H represented in FIG. 10K with the solid digraph links. Superframe I, j, and K may contain cells where other nodes communicate with each other, but they are not shown in this example.

Superframe I contains N channels (represented by Ch 0, Ch 1, and Ch N) and 2 time slots (represented by S0 and S1). In Ch 0-S0 cell, node G sends to node E. In Ch 1-S0 cell, node C sends to node A. In Ch N-S1 cell, node E sends to node C. Superframe J contains N channels (represented by Ch 0, Ch 1, and Ch N) and 2 time slots (represented by S0 and S1). In Ch 0-S0 cell, node H sends to node B. In Ch 1-S0 cell, node C sends to node A. In Ch 0-S1 cell, node H sends to node C. In Ch N-S1 cell, node B sends to node A. Superframe K contains N channels (represented by Ch 0, Ch 1, and Ch N) and 200 time slots (represented by S0, S1, S60, S142, S143, and S199). In Ch 0-S0 cell, node B sends to node A. In Ch N-S0 cell, node F sends to node C. In Ch 0-S1, node G sends to node E. In Ch 1-S1 cell, node H sends to node B. In Ch N-S1 cell, node C sends to node A. In Ch 0-S60 cell, node B sends to node A. In Ch N-S142 cell, node E sends to node C. In Ch 0-S143 cell, node G sends to node B. In Ch 1-S143 cell, node H sends to node C. In Ch 1-S199 cell, node F sends to node E.

In the example illustrated in Figures K and L, superframes K runs all the time and superframes I and J run only occasionally. Superframe K has a long latency (corresponding to the 200 time slots) and can be used for maintaining time synchronization, sending data and health reports, and control information. Superframe I has a short latency (corresponding to 2 time slots) with one payload from node G delivered to node A every 2 cycle. Superframe J has a short latency (corresponding to 2 time slots) with one payload from node H to node A in 1 cycle. In this example, superframe K takes longer to cycle through than superframe I or superframe J. In some embodiments, node G is a microphone sending real-time compressed voice information and node H is a camera transferring an image.

FIG. 11 shows an example of how data storage is organized on the intelligent node, with links and packets associated with superframes. In the example illustrated, the efficiency of spectrum and time usage is shown, suggesting how links can be ordered so that they can be optimized.

FIG. 12 shows that part of an intelligent node state machine that is associated with communication. Once a mote is initialized, it invokes an idle or sleep state 300 during which it listens 350 until timeout or until it receives a valid packet 351, acknowledges 353. It determines whether to process the packet locally 354, whereupon the packet is passed to the next layer 355 or is inserted in a queue 356, and then status is updated.

On a transmit link, it decides if it has a packet to send (or a beacon signal) 301 and adds destination and time of transmission stamps 302 to send, either direct or via broadcast 303. If direct it sets a timeout and listens for acknowledgment 304, identifies positive or negative acknowledgments 305 and either deletes the packet 306 and/or updates the standard internal time 307.

FIG. 13 is a diagram that illustrates signal types on directed links into and out of an intelligent node. It is understood that there are at least three nodes in the digraph. There is are N inputs from a first graph to an intelligent node N and M inputs from graph 2 to intelligent node M, which will respectively result in N plus D outputs on graph 1 and M plus K outputs on graph 2, indicative of a potential for increase and even crossover of graphs in a superframe. Significantly, the power consumed at intelligent node M is minimized for transmission and receipt by providing for a minimal power idle state when the node is not actively receiving or transmitting in accordance with the synchronization of timing among nodes in the digraph.

Although the foregoing embodiments have been described in some detail for purposes of clarity of understanding, the invention is not limited to the details provided. There are many alternative ways of implementing the invention. The disclosed embodiments are illustrative and not restrictive. 

1. A method for a digraph linked network to provide subnetwork communication comprising: running a first superframe in a digraph linked network containing a first digraph link, a second digraph link, and a third digraph link, wherein the first digraph link is a directional link specifying routing information between a first node and a second node in the digraph linked network, wherein the second digraph link comprises a directional link specifying routing information between the second node and a third node in the digraph linked network, wherein the third digraph link comprises a directional link specifying routing information between the third node and a fourth node in the digraph network, wherein a digraph of the digraph linked network forwards a packet using the first digraph link, the second digraph link, and the third digraph link towards a destination node; such that a packet forwarded along each digraph flows toward a destination node; and running a second superframe in the digraph linked network, wherein the second superframe includes defining communicating among a subset of nodes of the digraph linked network.
 2. A method as recited in claim 1, wherein the first superframe and the second superframe run concurrently.
 3. A method as recited in claim 1, wherein the first superframe and the second superframe run sequentially.
 4. A method as recited in claim 1, wherein the first superframe and the second superframe run sequentially and wherein the first superframe runs for a first predetermined period of time and the second superframe runs for a second predetermined period of time.
 5. A method as recited in claim 1, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by an event.
 6. A method as recited in claim 1, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by a change to the network state.
 7. A method as recited in claim 1, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by information received by the network.
 8. A method as recited in claim 1, wherein the first superframe contains more time slots than the second superframe.
 9. A method as recited in claim 1, wherein the first superframe takes longer to cycle through than the second superframe.
 10. A system for a digraph linked network to provide subnetwork communication comprising: a processor configured to run a first superframe in a digraph linked network containing a first digraph link, a second digraph link, and a third digraph link, wherein the first digraph link is a directional link specifying routing information between a first node and a second node in the digraph linked network, wherein the second digraph link comprises a directional link specifying routing information between the second node and a third node in the digraph linked network, wherein the third digraph link comprises a directional link specifying routing information between the third node and a fourth node in the digraph network, wherein a digraph of the digraph linked network forwards a packet using the first digraph link, the second digraph link, and the third digraph link towards a destination node; such that a packet forwarded along each digraph flows toward a destination node; and run a second superframe in the digraph linked network, wherein the second superframe includes defining communicating among a subset of nodes of the digraph linked network; a memory coupled to the processor and configured to provide instructions to the processor.
 11. A system as recited in claim 10, wherein the first superframe and the second superframe run concurrently.
 12. A system as recited in claim 10, wherein the first superframe and the second superframe run sequentially.
 13. A system as recited in claim 10, wherein the first superframe and the second superframe run sequentially and wherein the first superframe runs for a first predetermined period of time and the second superframe runs for a second predetermined period of time.
 14. A system as recited in claim 10, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by an event.
 15. A system as recited in claim 10, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by a change to the network state.
 16. A system as recited in claim 10, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by information received by the network.
 17. A system as recited in claim 10, wherein the first superframe contains more time slots than the second superframe.
 18. A system as recited in claim 10, wherein the first superframe takes longer to cycle through than the second superframe.
 19. A computer program product for a digraph linked network to provide subnetwork communication, the computer program product being embodied in a non-transitory computer readable storage medium and comprising computer instructions for: running a first superframe in a digraph linked network containing a first running a first superframe in a digraph linked network containing a first digraph link, a second digraph link, and a third digraph link, wherein the first digraph link is a directional link specifying routing information between a first node and a second node in the digraph linked network, wherein the second digraph link comprises a directional link specifying routing information between the second node and a third node in the digraph linked network, wherein the third digraph link comprises a directional link specifying routing information between the third node and a fourth node in the digraph network, wherein a digraph of the digraph linked network forwards a packet using the first digraph link, the second digraph link, and the third digraph link towards a destination node; such that a packet forwarded along each digraph flows toward a destination node; and running a second superframe in the digraph linked network, wherein the second superframe includes defining communicating among a subset of nodes of the digraph linked network.
 20. A computer program product as recited in claim 19, wherein the first superframe and the second superframe run concurrently.
 21. A computer program product as recited in claim 19, wherein the first superframe and the second superframe run sequentially.
 22. A computer program product as recited in claim 19, wherein the first superframe and the second superframe run sequentially and wherein the first superframe runs for a first predetermined period of time and the second superframe runs for a second predetermined period of time.
 23. A computer program product as recited in claim 19, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by an event.
 24. A computer program product as recited in claim 19, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by a change to the network state.
 25. A computer program product as recited in claim 19, wherein the first superframe and the second superframe run sequentially and wherein the change from the first superframe to the second superframe is triggered by information received by the network.
 26. A computer program product as recited in claim 19, wherein the first superframe contains more time slots than the second superframe.
 27. A computer program product as recited in claim 19, wherein the first superframe takes longer to cycle through than the second superframe. 